Zhang Min, Yu Peifeng, Xiong Kairong, Wang Yongyin, Liu Yingliang, Liang Yeru
Key Laboratory for Biobased Materials and Energy of Ministry of Education, Guangdong Provincial Engineering Technology Research Center for Optical Agriculture, College of Materials and Energy, South China Agricultural University, Guangzhou, 510642, P. R. China.
School of Environmental Science and Engineering, Guangdong University of Technology, Guangzhou, 510006, P. R. China.
Adv Mater. 2022 May;34(19):e2200860. doi: 10.1002/adma.202200860. Epub 2022 Apr 5.
Zn powder (Zn-P)-based anodes are considered ideal candidates for Zn-based batteries because they enable a positive synergistic integration of safety and energy density. However, Zn-P-based anodes still experience easy corrosion, uncontrolled dendrite growth, and poor mechanical strength, which restrict their further application. Herein, a mixed ionic-electronic conducting scaffold is introduced into Zn-P to successfully fabricate anti-corrosive, flexible, and dendrite-free Zn anodes using a scalable tape-casting strategy. The as-established scaffold is characterized by robust flexibility, facile scale-up synthesis methodology, and exceptional anti-corrosive characteristics, and it can effectively homogenize the Zn flux during Zn plating/stripping, thus allowing stable Zn cycling. Benefiting from these comprehensive attributes, the as-prepared Zn-P-based anode provides superior electrochemical performance, including long-life cycling stability and high rate capability in practical coin and flexible pouch cells; thus, it holds great potential for developing advanced Zn-ion batteries. The findings of this study provide insights for a promising scalable pathway to fabricate highly efficient and reliable Zn-based anodes and will aid in the realization of advanced flexible energy-storage devices.
基于锌粉(Zn-P)的阳极被认为是锌基电池的理想候选者,因为它们能够实现安全性和能量密度的正协同整合。然而,基于Zn-P的阳极仍然容易发生腐蚀、枝晶生长不受控制以及机械强度差,这限制了它们的进一步应用。在此,将混合离子-电子传导支架引入Zn-P中,采用可扩展的流延铸造策略成功制备了抗腐蚀、柔性且无枝晶的锌阳极。所建立的支架具有强大的柔韧性、易于放大的合成方法以及出色的抗腐蚀特性,并且它可以在锌电镀/剥离过程中有效地使锌通量均匀化,从而实现稳定的锌循环。受益于这些综合特性,所制备的基于Zn-P的阳极具有优异的电化学性能,包括在实际硬币型和柔性软包电池中的长寿命循环稳定性和高倍率性能;因此,它在开发先进的锌离子电池方面具有巨大潜力。本研究的结果为制造高效可靠的锌基阳极提供了一条有前景的可扩展途径,并将有助于实现先进的柔性储能装置。